Disk-Pack Turbine With Hyperbolic Waveforms for Ambient Fluid Separation
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Solution Overview
Problem
Existing technologies lack an efficient method for processing fluids to dissociate components and generate power, particularly in a system that can operate at ambient temperatures with minimal input energy.
Innovation Solution
The system employs rotating hyperbolic waveform structures and dynamics to process fluids, incorporating a housing with a vortex chamber, waveform disks, coil arrays, and a drive system to create a magnetic field for power generation and fluid dissociation.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Use of energy by moving object
If conventional fluid processing methods are used, then fluid components can be separated, but high energy input and high temperatures are required
Solution Approach 1:
The patent replaces conventional thermal and high-energy mechanical separation systems with a magnetic field-based separation mechanism. The coil array generates magnetic fields that interact with the rotating waveform disks to separate fluid components without requiring high temperatures or excessive energy input, thus resolving the contradiction between low energy use and effective fluid processing.
Solution Approach 2:
The invention changes the operating parameters from high-temperature thermal processes to ambient temperature magnetic field processes. By using magnetic fields instead of thermal energy, the system achieves fluid component separation at ambient temperatures with minimal energy input, directly addressing the contradiction between energy consumption and operating temperature.
2Power
If efficient power generation and fluid dissociation are achieved, then strong field energy production is obtained, but system complexity increases
Solution Approach 1:
The waveform disks serve multiple functions simultaneously: they rotate to generate magnetic field interactions for power generation, creates vortex patterns for fluid dissociation, and facilitate component separation. This multi-functionality allows the system to achieve efficient power generation and fluid dissociation without proportionally increasing system complexity, as one component performs multiple critical roles.
Solution Approach 2:
The patent combines the power generation mechanism and fluid dissociation process into a single integrated system. The rotating waveform disks and coil array work together to simultaneously generate electrical power through magnetic field interaction and dissociate fluid components through vortex dynamics, eliminating the need for separate systems and reducing overall complexity.
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
This approach enables efficient power generation and fluid dissociation at ambient temperatures with minimal input energy, achieving strong field energy production and effective separation of fluid components.
Implementation Method 1
at least one coil array in magnetic communication with the plurality of waveform disks; at least one magnet plate rotatable about the feed inlet, wherein the plate includes an array of magnets where one of the at least one coil array is between one of the at least one magnet plate and the plurality of waveform disks
Implementation Method 2
a vortex chamber in fluid communication with the at least one feed inlet; a fluid pathway exists from the vortex induction chamber into the expansion chamber
Data Source
AI summary
A system and method in at least one embodiment for separating fluids including liquids and gases into subcomponents by passing the fluid through an intake chamber into an expansion chamber and then through at least a portion of a waveform pattern present between at least two rotors and/or disks. In at least one embodiment, the waveform patterns include a plurality of hyperbolic waveforms axially aligned around a horizontal center of the system.


